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- README.md +0 -285
- corpus.jsonl.gz → corpus/nq-corpus-00000-of-00003.parquet +2 -2
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README.md
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---
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annotations_creators: []
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language_creators: []
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language:
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- en
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license:
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- cc-by-sa-4.0
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multilinguality:
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- monolingual
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paperswithcode_id: beir
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pretty_name: BEIR Benchmark
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size_categories:
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msmarco:
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- 1M<n<10M
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trec-covid:
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- 100k<n<1M
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nfcorpus:
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- 1K<n<10K
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nq:
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- 1M<n<10M
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hotpotqa:
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- 1M<n<10M
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fiqa:
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- 10K<n<100K
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arguana:
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- 1K<n<10K
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touche-2020:
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- 100K<n<1M
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cqadupstack:
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- 100K<n<1M
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quora:
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- 100K<n<1M
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dbpedia:
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- 1M<n<10M
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scidocs:
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- 10K<n<100K
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fever:
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- 1M<n<10M
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climate-fever:
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- 1M<n<10M
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scifact:
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- 1K<n<10K
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source_datasets: []
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task_categories:
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- text-retrieval
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- zero-shot-retrieval
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- information-retrieval
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- zero-shot-information-retrieval
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task_ids:
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- passage-retrieval
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- entity-linking-retrieval
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- fact-checking-retrieval
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- tweet-retrieval
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- citation-prediction-retrieval
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- duplication-question-retrieval
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- argument-retrieval
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- news-retrieval
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- biomedical-information-retrieval
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- question-answering-retrieval
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---
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# Dataset Card for BEIR Benchmark
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## Table of Contents
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- [Dataset Description](#dataset-description)
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- [Dataset Summary](#dataset-summary)
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- [Supported Tasks and Leaderboards](#supported-tasks-and-leaderboards)
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- [Languages](#languages)
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- [Dataset Structure](#dataset-structure)
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- [Data Instances](#data-instances)
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- [Data Fields](#data-fields)
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- [Data Splits](#data-splits)
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- [Dataset Creation](#dataset-creation)
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- [Curation Rationale](#curation-rationale)
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- [Source Data](#source-data)
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- [Annotations](#annotations)
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- [Personal and Sensitive Information](#personal-and-sensitive-information)
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- [Considerations for Using the Data](#considerations-for-using-the-data)
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- [Social Impact of Dataset](#social-impact-of-dataset)
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- [Discussion of Biases](#discussion-of-biases)
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- [Other Known Limitations](#other-known-limitations)
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- [Additional Information](#additional-information)
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- [Dataset Curators](#dataset-curators)
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- [Licensing Information](#licensing-information)
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- [Citation Information](#citation-information)
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- [Contributions](#contributions)
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## Dataset Description
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- **Homepage:** https://github.com/UKPLab/beir
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- **Repository:** https://github.com/UKPLab/beir
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- **Paper:** https://openreview.net/forum?id=wCu6T5xFjeJ
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- **Leaderboard:** https://docs.google.com/spreadsheets/d/1L8aACyPaXrL8iEelJLGqlMqXKPX2oSP_R10pZoy77Ns
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- **Point of Contact:** [email protected]
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### Dataset Summary
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BEIR is a heterogeneous benchmark that has been built from 18 diverse datasets representing 9 information retrieval tasks:
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- Fact-checking: [FEVER](http://fever.ai), [Climate-FEVER](http://climatefever.ai), [SciFact](https://github.com/allenai/scifact)
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- Question-Answering: [NQ](https://ai.google.com/research/NaturalQuestions), [HotpotQA](https://hotpotqa.github.io), [FiQA-2018](https://sites.google.com/view/fiqa/)
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- Bio-Medical IR: [TREC-COVID](https://ir.nist.gov/covidSubmit/index.html), [BioASQ](http://bioasq.org), [NFCorpus](https://www.cl.uni-heidelberg.de/statnlpgroup/nfcorpus/)
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- News Retrieval: [TREC-NEWS](https://trec.nist.gov/data/news2019.html), [Robust04](https://trec.nist.gov/data/robust/04.guidelines.html)
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- Argument Retrieval: [Touche-2020](https://webis.de/events/touche-20/shared-task-1.html), [ArguAna](tp://argumentation.bplaced.net/arguana/data)
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- Duplicate Question Retrieval: [Quora](https://www.quora.com/q/quoradata/First-Quora-Dataset-Release-Question-Pairs), [CqaDupstack](http://nlp.cis.unimelb.edu.au/resources/cqadupstack/)
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- Citation-Prediction: [SCIDOCS](https://allenai.org/data/scidocs)
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- Tweet Retrieval: [Signal-1M](https://research.signal-ai.com/datasets/signal1m-tweetir.html)
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- Entity Retrieval: [DBPedia](https://github.com/iai-group/DBpedia-Entity/)
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All these datasets have been preprocessed and can be used for your experiments.
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```python
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```
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### Supported Tasks and Leaderboards
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The dataset supports a leaderboard that evaluates models against task-specific metrics such as F1 or EM, as well as their ability to retrieve supporting information from Wikipedia.
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The current best performing models can be found [here](https://eval.ai/web/challenges/challenge-page/689/leaderboard/).
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### Languages
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All tasks are in English (`en`).
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## Dataset Structure
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All BEIR datasets must contain a corpus, queries and qrels (relevance judgments file). They must be in the following format:
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- `corpus` file: a `.jsonl` file (jsonlines) that contains a list of dictionaries, each with three fields `_id` with unique document identifier, `title` with document title (optional) and `text` with document paragraph or passage. For example: `{"_id": "doc1", "title": "Albert Einstein", "text": "Albert Einstein was a German-born...."}`
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- `queries` file: a `.jsonl` file (jsonlines) that contains a list of dictionaries, each with two fields `_id` with unique query identifier and `text` with query text. For example: `{"_id": "q1", "text": "Who developed the mass-energy equivalence formula?"}`
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- `qrels` file: a `.tsv` file (tab-seperated) that contains three columns, i.e. the `query-id`, `corpus-id` and `score` in this order. Keep 1st row as header. For example: `q1 doc1 1`
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### Data Instances
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A high level example of any beir dataset:
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```python
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corpus = {
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"doc1" : {
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"title": "Albert Einstein",
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"text": "Albert Einstein was a German-born theoretical physicist. who developed the theory of relativity, \
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one of the two pillars of modern physics (alongside quantum mechanics). His work is also known for \
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its influence on the philosophy of science. He is best known to the general public for his mass–energy \
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equivalence formula E = mc2, which has been dubbed 'the world's most famous equation'. He received the 1921 \
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Nobel Prize in Physics 'for his services to theoretical physics, and especially for his discovery of the law \
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of the photoelectric effect', a pivotal step in the development of quantum theory."
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},
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"doc2" : {
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"title": "", # Keep title an empty string if not present
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"text": "Wheat beer is a top-fermented beer which is brewed with a large proportion of wheat relative to the amount of \
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malted barley. The two main varieties are German Weißbier and Belgian witbier; other types include Lambic (made\
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with wild yeast), Berliner Weisse (a cloudy, sour beer), and Gose (a sour, salty beer)."
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},
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}
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queries = {
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"q1" : "Who developed the mass-energy equivalence formula?",
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"q2" : "Which beer is brewed with a large proportion of wheat?"
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}
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qrels = {
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"q1" : {"doc1": 1},
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"q2" : {"doc2": 1},
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}
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```
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### Data Fields
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Examples from all configurations have the following features:
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### Corpus
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- `corpus`: a `dict` feature representing the document title and passage text, made up of:
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- `_id`: a `string` feature representing the unique document id
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- `title`: a `string` feature, denoting the title of the document.
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- `text`: a `string` feature, denoting the text of the document.
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### Queries
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- `queries`: a `dict` feature representing the query, made up of:
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- `_id`: a `string` feature representing the unique query id
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- `text`: a `string` feature, denoting the text of the query.
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### Qrels
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- `qrels`: a `dict` feature representing the query document relevance judgements, made up of:
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- `_id`: a `string` feature representing the query id
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- `_id`: a `string` feature, denoting the document id.
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- `score`: a `int32` feature, denoting the relevance judgement between query and document.
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### Data Splits
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| Dataset | Website| BEIR-Name | Type | Queries | Corpus | Rel D/Q | Down-load | md5 |
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| -------- | -----| ---------| --------- | ----------- | ---------| ---------| :----------: | :------:|
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| MSMARCO | [Homepage](https://microsoft.github.io/msmarco/)| ``msmarco`` | ``train``<br>``dev``<br>``test``| 6,980 | 8.84M | 1.1 | [Link](https://public.ukp.informatik.tu-darmstadt.de/thakur/BEIR/datasets/msmarco.zip) | ``444067daf65d982533ea17ebd59501e4`` |
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| TREC-COVID | [Homepage](https://ir.nist.gov/covidSubmit/index.html)| ``trec-covid``| ``test``| 50| 171K| 493.5 | [Link](https://public.ukp.informatik.tu-darmstadt.de/thakur/BEIR/datasets/trec-covid.zip) | ``ce62140cb23feb9becf6270d0d1fe6d1`` |
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| NFCorpus | [Homepage](https://www.cl.uni-heidelberg.de/statnlpgroup/nfcorpus/) | ``nfcorpus`` | ``train``<br>``dev``<br>``test``| 323 | 3.6K | 38.2 | [Link](https://public.ukp.informatik.tu-darmstadt.de/thakur/BEIR/datasets/nfcorpus.zip) | ``a89dba18a62ef92f7d323ec890a0d38d`` |
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| BioASQ | [Homepage](http://bioasq.org) | ``bioasq``| ``train``<br>``test`` | 500 | 14.91M | 8.05 | No | [How to Reproduce?](https://github.com/UKPLab/beir/blob/main/examples/dataset#2-bioasq) |
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| NQ | [Homepage](https://ai.google.com/research/NaturalQuestions) | ``nq``| ``train``<br>``test``| 3,452 | 2.68M | 1.2 | [Link](https://public.ukp.informatik.tu-darmstadt.de/thakur/BEIR/datasets/nq.zip) | ``d4d3d2e48787a744b6f6e691ff534307`` |
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| HotpotQA | [Homepage](https://hotpotqa.github.io) | ``hotpotqa``| ``train``<br>``dev``<br>``test``| 7,405 | 5.23M | 2.0 | [Link](https://public.ukp.informatik.tu-darmstadt.de/thakur/BEIR/datasets/hotpotqa.zip) | ``f412724f78b0d91183a0e86805e16114`` |
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| FiQA-2018 | [Homepage](https://sites.google.com/view/fiqa/) | ``fiqa`` | ``train``<br>``dev``<br>``test``| 648 | 57K | 2.6 | [Link](https://public.ukp.informatik.tu-darmstadt.de/thakur/BEIR/datasets/fiqa.zip) | ``17918ed23cd04fb15047f73e6c3bd9d9`` |
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| Signal-1M(RT) | [Homepage](https://research.signal-ai.com/datasets/signal1m-tweetir.html)| ``signal1m`` | ``test``| 97 | 2.86M | 19.6 | No | [How to Reproduce?](https://github.com/UKPLab/beir/blob/main/examples/dataset#4-signal-1m) |
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| TREC-NEWS | [Homepage](https://trec.nist.gov/data/news2019.html) | ``trec-news`` | ``test``| 57 | 595K | 19.6 | No | [How to Reproduce?](https://github.com/UKPLab/beir/blob/main/examples/dataset#1-trec-news) |
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| ArguAna | [Homepage](http://argumentation.bplaced.net/arguana/data) | ``arguana``| ``test`` | 1,406 | 8.67K | 1.0 | [Link](https://public.ukp.informatik.tu-darmstadt.de/thakur/BEIR/datasets/arguana.zip) | ``8ad3e3c2a5867cdced806d6503f29b99`` |
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| Touche-2020| [Homepage](https://webis.de/events/touche-20/shared-task-1.html) | ``webis-touche2020``| ``test``| 49 | 382K | 19.0 | [Link](https://public.ukp.informatik.tu-darmstadt.de/thakur/BEIR/datasets/webis-touche2020.zip) | ``46f650ba5a527fc69e0a6521c5a23563`` |
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| CQADupstack| [Homepage](http://nlp.cis.unimelb.edu.au/resources/cqadupstack/) | ``cqadupstack``| ``test``| 13,145 | 457K | 1.4 | [Link](https://public.ukp.informatik.tu-darmstadt.de/thakur/BEIR/datasets/cqadupstack.zip) | ``4e41456d7df8ee7760a7f866133bda78`` |
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| Quora| [Homepage](https://www.quora.com/q/quoradata/First-Quora-Dataset-Release-Question-Pairs) | ``quora``| ``dev``<br>``test``| 10,000 | 523K | 1.6 | [Link](https://public.ukp.informatik.tu-darmstadt.de/thakur/BEIR/datasets/quora.zip) | ``18fb154900ba42a600f84b839c173167`` |
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| DBPedia | [Homepage](https://github.com/iai-group/DBpedia-Entity/) | ``dbpedia-entity``| ``dev``<br>``test``| 400 | 4.63M | 38.2 | [Link](https://public.ukp.informatik.tu-darmstadt.de/thakur/BEIR/datasets/dbpedia-entity.zip) | ``c2a39eb420a3164af735795df012ac2c`` |
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| SCIDOCS| [Homepage](https://allenai.org/data/scidocs) | ``scidocs``| ``test``| 1,000 | 25K | 4.9 | [Link](https://public.ukp.informatik.tu-darmstadt.de/thakur/BEIR/datasets/scidocs.zip) | ``38121350fc3a4d2f48850f6aff52e4a9`` |
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| FEVER | [Homepage](http://fever.ai) | ``fever``| ``train``<br>``dev``<br>``test``| 6,666 | 5.42M | 1.2| [Link](https://public.ukp.informatik.tu-darmstadt.de/thakur/BEIR/datasets/fever.zip) | ``5a818580227bfb4b35bb6fa46d9b6c03`` |
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| Climate-FEVER| [Homepage](http://climatefever.ai) | ``climate-fever``|``test``| 1,535 | 5.42M | 3.0 | [Link](https://public.ukp.informatik.tu-darmstadt.de/thakur/BEIR/datasets/climate-fever.zip) | ``8b66f0a9126c521bae2bde127b4dc99d`` |
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| SciFact| [Homepage](https://github.com/allenai/scifact) | ``scifact``| ``train``<br>``test``| 300 | 5K | 1.1 | [Link](https://public.ukp.informatik.tu-darmstadt.de/thakur/BEIR/datasets/scifact.zip) | ``5f7d1de60b170fc8027bb7898e2efca1`` |
|
212 |
-
| Robust04 | [Homepage](https://trec.nist.gov/data/robust/04.guidelines.html) | ``robust04``| ``test``| 249 | 528K | 69.9 | No | [How to Reproduce?](https://github.com/UKPLab/beir/blob/main/examples/dataset#3-robust04) |
|
213 |
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|
214 |
-
|
215 |
-
## Dataset Creation
|
216 |
-
|
217 |
-
### Curation Rationale
|
218 |
-
|
219 |
-
[Needs More Information]
|
220 |
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|
221 |
-
### Source Data
|
222 |
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|
223 |
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#### Initial Data Collection and Normalization
|
224 |
-
|
225 |
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[Needs More Information]
|
226 |
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|
227 |
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#### Who are the source language producers?
|
228 |
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|
229 |
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[Needs More Information]
|
230 |
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|
231 |
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### Annotations
|
232 |
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|
233 |
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#### Annotation process
|
234 |
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|
235 |
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[Needs More Information]
|
236 |
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|
237 |
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#### Who are the annotators?
|
238 |
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|
239 |
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[Needs More Information]
|
240 |
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|
241 |
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### Personal and Sensitive Information
|
242 |
-
|
243 |
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[Needs More Information]
|
244 |
-
|
245 |
-
## Considerations for Using the Data
|
246 |
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|
247 |
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### Social Impact of Dataset
|
248 |
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|
249 |
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[Needs More Information]
|
250 |
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|
251 |
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### Discussion of Biases
|
252 |
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|
253 |
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[Needs More Information]
|
254 |
-
|
255 |
-
### Other Known Limitations
|
256 |
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|
257 |
-
[Needs More Information]
|
258 |
-
|
259 |
-
## Additional Information
|
260 |
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|
261 |
-
### Dataset Curators
|
262 |
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|
263 |
-
[Needs More Information]
|
264 |
-
|
265 |
-
### Licensing Information
|
266 |
-
|
267 |
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[Needs More Information]
|
268 |
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|
269 |
-
### Citation Information
|
270 |
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|
271 |
-
Cite as:
|
272 |
-
```
|
273 |
-
@inproceedings{
|
274 |
-
thakur2021beir,
|
275 |
-
title={{BEIR}: A Heterogeneous Benchmark for Zero-shot Evaluation of Information Retrieval Models},
|
276 |
-
author={Nandan Thakur and Nils Reimers and Andreas R{\"u}ckl{\'e} and Abhishek Srivastava and Iryna Gurevych},
|
277 |
-
booktitle={Thirty-fifth Conference on Neural Information Processing Systems Datasets and Benchmarks Track (Round 2)},
|
278 |
-
year={2021},
|
279 |
-
url={https://openreview.net/forum?id=wCu6T5xFjeJ}
|
280 |
-
}
|
281 |
-
```
|
282 |
-
|
283 |
-
### Contributions
|
284 |
-
|
285 |
-
Thanks to [@Nthakur20](https://github.com/Nthakur20) for adding this dataset.
|
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|
corpus.jsonl.gz → corpus/nq-corpus-00000-of-00003.parquet
RENAMED
@@ -1,3 +1,3 @@
|
|
1 |
version https://git-lfs.github.com/spec/v1
|
2 |
-
oid sha256:
|
3 |
-
size
|
|
|
1 |
version https://git-lfs.github.com/spec/v1
|
2 |
+
oid sha256:35549fb0220ac243b089167cd6eeb5a192717d654663045effc76844579c60f3
|
3 |
+
size 284766831
|
corpus/nq-corpus-00001-of-00003.parquet
ADDED
@@ -0,0 +1,3 @@
|
|
|
|
|
|
|
|
|
1 |
+
version https://git-lfs.github.com/spec/v1
|
2 |
+
oid sha256:8a009ff221601103bf990ee6d1d06f04a9ea10296e9af6e3cb78f1c0b4ce0b2d
|
3 |
+
size 285054239
|
corpus/nq-corpus-00002-of-00003.parquet
ADDED
@@ -0,0 +1,3 @@
|
|
|
|
|
|
|
|
|
1 |
+
version https://git-lfs.github.com/spec/v1
|
2 |
+
oid sha256:d0e55905a451040b1811a2030c0c5e313c712db98c3874b3696f52d782b1d014
|
3 |
+
size 217186836
|
nq.py
DELETED
@@ -1,58 +0,0 @@
|
|
1 |
-
import json
|
2 |
-
import csv
|
3 |
-
import os
|
4 |
-
import datasets
|
5 |
-
|
6 |
-
logger = datasets.logging.get_logger(__name__)
|
7 |
-
|
8 |
-
_DESCRIPTION = "FIQA Dataset"
|
9 |
-
_SPLITS = ["corpus", "queries"]
|
10 |
-
|
11 |
-
URL = ""
|
12 |
-
_URLs = {subset: URL + f"{subset}.jsonl.gz" for subset in _SPLITS}
|
13 |
-
|
14 |
-
class BEIR(datasets.GeneratorBasedBuilder):
|
15 |
-
"""BEIR BenchmarkDataset."""
|
16 |
-
|
17 |
-
BUILDER_CONFIGS = [
|
18 |
-
datasets.BuilderConfig(
|
19 |
-
name=name,
|
20 |
-
description=f"This is the {name} in the FiQA dataset.",
|
21 |
-
) for name in _SPLITS
|
22 |
-
]
|
23 |
-
|
24 |
-
def _info(self):
|
25 |
-
|
26 |
-
return datasets.DatasetInfo(
|
27 |
-
description=_DESCRIPTION,
|
28 |
-
features=datasets.Features({
|
29 |
-
"_id": datasets.Value("string"),
|
30 |
-
"title": datasets.Value("string"),
|
31 |
-
"text": datasets.Value("string"),
|
32 |
-
}),
|
33 |
-
supervised_keys=None,
|
34 |
-
)
|
35 |
-
|
36 |
-
def _split_generators(self, dl_manager):
|
37 |
-
"""Returns SplitGenerators."""
|
38 |
-
|
39 |
-
my_urls = _URLs[self.config.name]
|
40 |
-
data_dir = dl_manager.download_and_extract(my_urls)
|
41 |
-
|
42 |
-
return [
|
43 |
-
datasets.SplitGenerator(
|
44 |
-
name=self.config.name,
|
45 |
-
# These kwargs will be passed to _generate_examples
|
46 |
-
gen_kwargs={"filepath": data_dir},
|
47 |
-
),
|
48 |
-
]
|
49 |
-
|
50 |
-
def _generate_examples(self, filepath):
|
51 |
-
"""Yields examples."""
|
52 |
-
with open(filepath, encoding="utf-8") as f:
|
53 |
-
texts = f.readlines()
|
54 |
-
for i, text in enumerate(texts):
|
55 |
-
text = json.loads(text)
|
56 |
-
if 'metadata' in text: del text['metadata']
|
57 |
-
if "title" not in text: text["title"] = ""
|
58 |
-
yield i, text
|
|
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|
queries.jsonl.gz → queries/nq-queries.parquet
RENAMED
@@ -1,3 +1,3 @@
|
|
1 |
version https://git-lfs.github.com/spec/v1
|
2 |
-
oid sha256:
|
3 |
-
size
|
|
|
1 |
version https://git-lfs.github.com/spec/v1
|
2 |
+
oid sha256:4692edc75338387b49f59ee96f8a3adecce76685f0360cd1d0405bb955effc19
|
3 |
+
size 141399
|